Institutional Publications
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Item Polyphenols-rich Indian barberry berries extract alleviates inorganic arsenic exposure-induced cognitive impairments and associated gut microflora alterations(Elsevier B.V., 2026) Vandana; Gupta, Shweta; Sharma, Rajni; Pandey, Ashutosh; Bishnoi, Mahendra; Rawal, Rakesh; Das, Santasabuj; Singh, Dhirendra PratapArsenic, a globally prevalent environmental toxin that can lead to neuro-behavioural changes. Oxidative stress and activation of inflammatory cascades are prominent mechanisms underlying these effects. The present study investigated the effects of polyphenol-rich extracts from Berberis aristata (Indian barberry) against inorganic arsenic-induced cognitive impairments in a murine model and presented mechanistic insights into its functional food properties. Response Surface Methodology (RSM)-guided hydro-alcoholic extracts were prepared and chemically characterized for their antioxidant activity, total phenolic contents (TPC) and free radical scavenging activities (RSA). UHPLC and LC-MS-based profiling of polyphenols, anthocyanins, and proanthocyanidins was performed. In-vitro toxicity studies in hepatic and colonic cancer cell lines, followed by in-vivo evaluation of these extracts in inorganic arsenic-exposed mice for spatial navigation tasks and passive avoidance-based learning were performed. Further assessments included neurotransmitter levels, histopathological investigations, qRT-PCR-based gene expression analysis, inflammatory cytokines and oxido-nitrosative stress markers in the brain and gastrointestinal tract, Evan's blue dye-based ileum permeability, and short chain fatty acids (SCFAs) estimation, along with Oxford Nanopore-based 16S rRNA metagenomics in cecal contents and PICRUSt2-based functional prediction of metagenomic data. RSM-optimized methods for polyphenol extraction yielded extracts with high TPC and RSA, with flavanols, phenolic acids, and proanthocyanidins identified as major polyphenols, and no in-vitro toxicity was observed. The extracts significantly prevented arsenic exposure-induced cognitive impairment, altered neurotransmitter turnover, neuroinflammation and gastrointestinal tract inflammation, oxidative stress-induced damage, increased ileum permeability, SCFA alteration, and gut microbial dysbiosis. These findings underscore the therapeutic/preventive potential of this polyphenol-rich extract against environmental toxicant-induced neurotoxicity, potentially involving gut microbiota-associated pathways.Item Transcriptomic and OsWAK24-MPK3 crosstalk reveal resistance mechanism of primed rice seedlings against Arsenic-Iron(Oxford University Press, 2026) Bhatia, Priyanka; Mittal, Lavanya; Pandey, Shubhangi; Khatoon, Narjis Saba; Sinha, Alok Krishna; Gupta, MeetuPriming, elucidated as "memory," refers to the preconditioning of plant's stress responses to enhance resilience toward future stressors, including arsenic (As) contamination. This adaptive preparedness becomes further complex under As-Fe(iron) interplay, which remains scarcely delineated within priming background. Here, we employed Illumina sequencing to acquire global transcriptome alterations and heterologous interaction approach to chart the molecular reprogramming associated with As and As-Fe-dynamics in primed rice. The transcriptome revealed 3005 and 3650 genes to be differentially regulated in As and As-Fe-exposed primed seedlings. Comprehensive elucidation of expression profiling revealed that key genes were involved in transportation (OsNramp, OsFCR, OsNAS), signalling (OsWRKY, OsMYB, OsAP2, OsZF-TF), and defence (OsHSP, OsPRX, OsCyt P450). The antioxidant (OsGST, OsAPX) expression correlated well with their respective physiological enzyme activity. The entire WAK module, transducing extracellular signals to intercellular pathways, was differentially regulated under As and As-Fe influence. Notably, OsWAK24 revealed higher expression under As-Fe, reflecting its association with seedlings' tolerance behaviour. The computational protein network and docking unfolded OsMPK3 as an interactor of OsWAK24. The split-ubiquitin-based yeast-hybrid assay and immunoblot revealed OsWAK24-OsMPK3 association, suggesting OsMPK3 phosphorylates OsWAK24 at serine residue. Overall, the results decoded the seedling's resilience mechanism and aid in developing rice varieties with desired traits.Item Nutrient use efficiency promoted hormonal crosstalk and stomatal dynamics in wheat under the co-impact of arsenic and drought(Elsevier B.V., 2025) Khatoon, Narjis Saba; Khan, Asna; Bhatia, Priyanka; Vadassery, Jyothilakshmi; Gupta, MeetuThis study presents the interlink of Nutrient use efficiency (NUE) influenced hormone and stomatal dynamics, in enhancing photosynthesis under the co-impact of drought (D) and arsenic (As) in wheat. We analyzed how nitrogen (N) and phosphorus (P) supplementation under D+As modulates these interactions with jasmonic acid (JA) and sucrose, as central regulators. Enhanced JA by NP-enrichment reduced abscisic-acid (ABA) and salicylic-acid (SA) production to promote stomatal opening via sugar-transporter-proteins; TaSTP12, TaSTP51, and TaKAT-like1. Computational docking confirms strong interaction between JA, TaMYB84 and TaSTP’s (TaSTP12, TaSTP51) suggesting a functional complex that facilitates sucrose osmoregulation. This influences stomatal opening which promotes gas-exchange for better photosynthesis. Additionally, we highlight the correlation between stomatal dynamics and NP-use efficiency. The NP-promoted photosynthesis, phosphorus-use efficiency (PnPUE), and TaPHT1. 10 ensures Pi availability for Krebs-cycle. This improves non-photochemical quenching (NPQ), for ATP production, boosting CO2 assimilation. Moreover, the increased photosynthetic-nitrogen-use efficiency (PnNUE), along with TaNRT2.1, and TaAMT1.1 augmented rubisco activity, thereby increasing photosynthesis. NP-supplementation also boosts ASC-GSH cycle, which safeguards the rubisco enzyme and light-harvesting-complex. These processes optimize photosynthesis to maintain starch reserves and sustain wheat productivity under D+As. Our findings provide valuable insights into NP-mediated photosynthetic regulation and underscore the crucial role of NUE in optimizing this process.Item Metabolomic profiling reveals key factors and associated pathways regulating the differential behavior of rice (Oryza sativa L.) genotypes exposed to geogenic arsenic(Springer Nature Publishing AG, 2024) Saini, Himanshu; Panthri, Medha; Khan, Ehasanullah; Saxena, Samiksha; Pandey, Ashutosh; Gupta, MeetuArsenic (As) toxicity is an escalating problem; however, information about the metabolic events controlling the varied pattern of As accumulation in rice genotypes within their natural environment is still lacking. The present study is thus an advancement in unravelling the response of such rice genotypes. Soil-water-rice samples were analyzed for As accumulation using ICP-MS. Furthermore, we implemented metabolomics through LC-MS/MS and UHPLC to identify metabolic signatures regulating As content by observing the metalloid's composition in rice agrosystem. Results showed that rice genotypes differed significantly in their levels of metabolites, with Mini mansoori and Pioneer having the highest levels. Mini mansoori contained least As which might have been regulated by Ala, Ser, Glu, Phe, Asn, His, Ile, Lys, Gln, Trp, Tyr, chlorogenic, p-coumaric, trans-ferulic, rutin, morin, naringenin, kampferol, and myricetin, while Asp, Arg, Met, syringic, epigalocatechin, and apigenin contributed to the greater As acclimatization ability of Pioneer. Multivariate tools separated the rice genotypes into two major clusters: Pioneer-Mini mansoori and Damini-Sampoorna-Chintu. KEGG identified three major metabolic pathways (aminoacyl-tRNA, phenylpropanoid, and secondary metabolites biosynthesis route) linked with As tolerance and adaptation mechanisms in rice. Overall, these two genotypes symbolize their As hostile and accommodating attitudes probably due to the accumulated metabolites and the physicochemical attributes of the soil-water. Thus, thorough understanding of the metabolic reactions to As may facilitate the emergence of As tolerant/resilient genotypes. This will aid in the selection of molecular markers to cultivate healthier rice genotypes in As-contaminated areas.Item Unraveling the molecular aspects of iron-mediated OsWRKY76 signaling under arsenic stress in rice(Elsevier B.V., 2023) Mirza, Zainab; Jonwal, Sarvesh; Saini, Himanshu; Sinha, Alok Krishna; Gupta, MeetuArsenic (As) is a significant environmental element that restricts the growth and production of rice plants. Although the role of iron (Fe) to sequester As in rice is widely known, the molecular mechanism regarding As–Fe interaction remains opaque. Here, we show the differential response of two rice varieties (Ratna and Lalat) in terms of their morphological and biochemical changes in the presence of As and Fe. These results together with in-silico screening, gene expression analysis, and protein-protein interaction studies suggest the role of OsWRKY76 in Fe-mediated As stress alleviation. When OsWRKY76 is activated by MAPK signaling, it inhibits the gene expression of Fe transporters OsIRT1 and OsYSL2, which reduces the amount of Fe accumulated. However, MAPK signaling and OsWRKY76 remain down-regulated during Fe supplementation with As, which subsequently encourages the up-regulation of OsIRT1 and OsYSL2. This results in greater Fe content and decreased As accumulation and toxicity. The lower H2O2 and SOD, CAT, and APX activities were likewise seen under the As + Fe condition. Overall, results revealed the molecular aspects of Fe-mediated control of OsWRKY76 signaling and showed that Ratna is a more As tolerant variety than Lalat. Lalat, however, performs better in As stress due to the presence of Fe.Item Iono-metabolomic guided elucidation of arsenic induced physiological and metabolic dynamics in wheat genotypes(Elsevier B.V., 2023) Saini, Himanshu; Panthri, Medha; Rout, Biswaranjan; Pandey, Ashutosh; Gupta, MeetuDespite the growing concerns about arsenic (As) toxicity, information on wheat adaptability in such an aggravating environment is limited. Thus, the present investigation based on an iono-metabolomic approach is aimed to decipher the response of wheat genotypes towards As toxicity. Wheat genotypes procured from natural conditions were characterized as high As-contaminated (Shri ram-303 and HD-2967) and low As-contaminated (Malviya-234 and DBW-17) based on ICP-MS As accumulation analysis. Reduced chlorophyll fluorescence attributes, grain yield and quality traits, and low grain nutrient status were accompanied by remarkable grain As accumulation in high As-contaminated genotypes, thus imposing a higher potential cancer risk and hazard quotient. Contrarily, in low As-contaminated genotypes, the richness of Zn, N, Fe, Mn, Na, K, Mg, and Ca could probably have supported less grain As accumulation, imparting better agronomic and grain quality traits. Additionally, from metabolomic analysis (LC-MS/MS and UHPLC), abundances of alanine, aspartate, glutamate, quercetin, isoliquiritigenin, trans-ferrulic, cinnamic, caffeic, and syringic bestow Malviya-234 as the best edible wheat genotype. Further, the multivariate statistical analysis (HCA, PCA, and PLS-DA) revealed certain other key metabolites (rutin, nobletin, myricetin, catechin, and naringenin) based genotypic discrimination that imparts strength to genotypes for better adaptation in harsh conditions. Out of the 5 metabolic pathways ascertained through topological analysis, the two main pathways vital for plant's metabolic adjustments in an As-induced environment were: 1. The alanine, aspartate and glutamate metabolism pathway, and 2. The flavonoid biosynthesis pathway. This is also evident from network analysis, which stipulates amino acid metabolism as a prominent As regulatory factor closely associated with flavonoids and phenolics. Therefore, the present findings are useful for wheat breeding programs to develop As adaptive genotypes that are beneficial for crop improvement and human health.
